DocumentCode :
2471418
Title :
A two-stage cascade nonlinear dynamical model of single neurons for the separation and quantification of pre- and post-synaptic mechanisms of synaptic transmission
Author :
Lu, Ude ; Roach, Shane M. ; Song, Dong ; Berger, Theodore W.
Author_Institution :
Dept. of Biomed. Eng., Univ. of Southern California, Los Angeles, CA, USA
fYear :
2011
fDate :
Aug. 30 2011-Sept. 3 2011
Firstpage :
1427
Lastpage :
1430
Abstract :
Neurons receive pre-synaptic spike trains and transform them into post-synaptic spike trains. This spike train to spike train temporal transformation underlies all cognitive functions performed by neurons, e.g., learning and memory. The transformation is a highly nonlinear dynamical process that involves both pre- and post-synaptic mechanisms. The ability to separate and quantify the nonlinear dynamics of pre- and post-synaptic mechanism is needed to gain insights into this transformation. In this study, we developed a Volterra kernel based two-stage cascade model of synaptic transmission using synaptically-driven intracellular activities, to which broadband stimulation conditions were imposed. The first stage of the model represents the pre-synaptic mechanisms and describes the nonlinear dynamical transformation from pre-synaptic spike trains to transmitter vesicle release strengths. The vesicle release strengths were obtained from the intracellularly recorded excitatory post-synaptic currents (EPSCs). The second stage of the model represents the post-synaptic mechanisms and describes the nonlinear dynamical transformation from release strengths to excitatory post-synaptic potentials (EPSPs). One application of this cascade model is to analyze the pre- and post-synaptic mechanism change induced by long-term potentiation (LTP). This future application is expected to shed new light on the expression locus of LTP.
Keywords :
bioelectric phenomena; cellular biophysics; neurophysiology; Volterra kernel based two-stage cascade model; broadband stimulation condition; cognitive function; excitatory post-synaptic potential; intracellularly recorded excitatory post-synaptic currents; nonlinear dynamical transformation; post-synaptic mechanism; post-synaptic spike train; presynaptic mechanism; presynaptic spike train; single neurons; spike train temporal transformation; synaptic transmission; synaptically-driven intracellular activity; transmitter vesicle; two-stage cascade nonlinear dynamical model; Biological system modeling; Calcium; Computational modeling; Kernel; Neurons; Nonlinear dynamical systems; Transmitters; Animals; Computer Simulation; Electrical Synapses; Excitatory Postsynaptic Potentials; Humans; Long-Term Potentiation; Models, Neurological; Nerve Net; Neurons; Nonlinear Dynamics; Synaptic Transmission;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Engineering in Medicine and Biology Society, EMBC, 2011 Annual International Conference of the IEEE
Conference_Location :
Boston, MA
ISSN :
1557-170X
Print_ISBN :
978-1-4244-4121-1
Electronic_ISBN :
1557-170X
Type :
conf
DOI :
10.1109/IEMBS.2011.6090353
Filename :
6090353
Link To Document :
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